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At least 19 recordsLinked to original sources

Differentiation of myoepithelial cells in the developing rat sublingual gland.

Sublingual glands of rats were prepared for light and electron microscopy and for the histochemical demonstration of myofibrils and alkaline phosphatase (AkPase) activity. Through 17 days in utero, the epithelial cells of the glandular rudiment are relatively undifferentiated. At 18 days, the inner cells of the terminal buds begin to assemble around a lumen and accumulate secretory granules, while the outer cells flatten and form long processes. At 19 days, many of the outer cells have dilated cisternae of rough endoplasmic reticulum engorged with finely granular material. At 20 days, some of the outer cells have thin bands of microfilaments in their processes, suggesting that they are differentiating into myoepithelial cells (MEC). Though the secretory cells are almost mature at birth, only a few of the MEC have myofibrils detected with an actomyosin reaction, and AkPase activity is very weak. Progressive increases in AkPase activity and in myofibril size and number continue until the acini and intercalated ducts are fully invested with mature MEC at about 14 days after birth. Thus, the MEC and secretory cells begin to differentiate at the same time, but the MEC subsequently differentiate asynchronously with the secretory cells and with each other. Although the sublingual MEC are only partly differentiated in the newborn rat, their overall development occurs somewhat more rapidly than in the adjacent submandibular gland.

Actomyosin↗

Malignant epithelial tumors in the minor salivary glands, the submandibular gland, and the sublingual gland. Prognostic factors and treatment results.

Ninety-five malignant tumors in the submandibular gland, the sublingual gland, and the minor salivary glands seen in a 25-year period were reviewed. The patients were retrospectively staged using the Union Internationale Contre le Cancer (UICC) classification. The most frequent tumor was adenoid cystic carcinoma, followed by adenocarcinoma. The submandibular gland was the most frequent location. Five-year and 10-year crude survival rates were 62% and 43%, respectively. Clinical stage was the most important prognostic factor. Survival was not correlated with location of tumor, although recurrence and metastases occurred more frequently in patients with cancer of the submandibular gland. Histologically, the 5-year and 10-year survival was significantly better for patients with adenoid cystic carcinoma compared with the other types; however, although still significant, this difference diminished at 10 years, confirming the need for a long observation time for patients with this tumor.

Adolescent↗

Ultrastructure of the cat sublingual gland.

The sublingual gland of the cat consists primarily of branched secretory tubules that open into an abbreviated duct system. The simple epithelium that composes the secretory tubules consists of an admixture of mucous and serous cells, with the former predominating. Some secretory tubules are capped by a serous demilune. Regardless of position, almost all serous cells have prominent basal folds and border on at least one intercellular canaliculus as well as on the tubule lumen. Serous cells possess an extensive array of irregular, distended cisternae of rough-surfaced endoplasmic reticulum that frequently contain dense intracisternal granules. Serous granules are relatively few in number and rarely show evidence of substructure. Mucous cells, which lack basal folds, contain an apical mass of secretory material in the form of partially fused droplets. The duct system is somewhat less ordered than in most major salivary glands; secretory tubules empty into structures resembling intercalated ducts or may be in direct continuity with ducts intermediate in morphology between intercalated and excretory ducts. The absence of striated ducts noted in this study may be correlated with the high sodium content of cat sublingual saliva. The main excretory duct of the sublingual gland closely resembles that of the cat submandibular gland in terms of morphology, but exhibits little of the transport functions reported in the latter duct.

Animals↗

Ultrastructure of the ferret sublingual gland.

The sublingual glands of 2 male and 2 female adult ferrets were examined using electron microscopy. The secretory end piece consisted of mucous tubules, serous and mixed acini. The mucous cells showed two different types of granules. The serous cells contained electron-dense secretory granules. The duct system entirely comprised excretory ducts.

Animals↗

G protein coupling to M1 and M3 muscarinic receptors in sublingual glands.

Rat sublingual gland M2 and M3 muscarinic receptors each directly activate exocrine secretion. To investigate the functional role of coreceptor expression, we determined receptor-G protein coupling. Although membrane proteins of 40 and 41 kDa are ADP-ribosylated by pertussis toxin (PTX), and 44 kDa proteins by cholera toxin (CTX), both carbachol-stimulated high-affinity GTPase activity and the GTP-induced shift in agonist binding are insensitive to CTX or PTX. Carbachol enhances photoaffinity labeling ([alpha-(32)P]GTP-azidoaniline) of only 42-kDa proteins that are subsequently tractable to immunoprecipitation by antibodies specific for Galpha(q) or Galpha(11) but not Galpha(12) or Galpha(13). Carbachol-stimulated photoaffinity labeling as well as phosphatidylinositol 4,5-bisphosphate (PIP2) hydrolysis is reduced 55% and 60%, respectively, by M1 receptor blockade with m1-toxin. Galpha(q/11)-specific antibody blocks carbachol-stimulated PIP2 hydrolysis. We also provide estimates of the molar ratios of receptors to Galpha(q) and Galpha(11). Although simultaneous activation of M1 and M3 receptors is required for a maximal response, both receptor subtypes are coupled to Galpha(q) and Galpha(11) to stimulate exocrine secretion via redundant mechanisms.

Affinity Labels↗

Sialolithiasis in the sublingual gland.

Sialolithiasis is a major cause of salivary gland dysfunction. The submandibular gland is the most common site followed by the parotid gland. The sublingual gland and minor glands are very rare sites for stone formation. This paper describes a case of multiple sialoliths arising in the sublingual gland. They presented on the right floor of the mouth. The sublingual gland and sialoliths were completely removed with careful preservation of the lingual nerve and Wharton's duct. This was an uncommon sialolithiasis of the sublingual gland in a 14-year-old female.

Adolescent↗

Molecular cloning of a novel high molecular weight mucin (MG1) from human sublingual gland.

A human sublingual gland cDNA library was screened with a polyclonal antiserum against deglycosylated MG1 and a positive clone, pSM2-1, was isolated which codes for 196 amino acids in the carboxyl-terminal region of this mucin. This region is cysteine-rich and contains a C2-like domain upstream of the extreme carboxyl-terminal domain in which the arrangement of cysteines is nearly identical to that in human von Willebrand factor, human intestinal mucin MUC2, human tracheobronchial mucin MUC5 and porcine and bovine submaxillary gland mucins. Northern analyses with pSM2-1 showed MG1 transcripts are abundant in sublingual gland and barely detectable in submandibular gland. This study provides the first primary sequence data on human salivary mucin MG1 and the significance of the results is discussed with respect to the biosynthesis and differential expression of MG1 in human salivary glands.

Amino Acid Sequence↗

Progesterone metabolism by major salivary glands of rat--I. Submandibular and sublingual glands.

The metabolism of progesterone by the submandibular and sublingual salivary glands of female (nonpregnant and pregnant) and male rats was studied. The metabolism was in both sexes significantly greater in submandibular than in sublingual glands. Sex differences were not seen in sublingual glands but less metabolism was found in homogenates and microsomal fractions of female (nonpregnant and pregnant) submandibular glands compared to that of males. The metabolism did not differ between pregnant and nonpregnant female rats. The metabolites were mainly 5 alpha-pregnane-compounds. On the basis of the metabolites identified it can be concluded that rat submandibular and sublingual glands contain at least 3 alpha-, 3 beta-, 20 alpha- and 20 beta-hydroxysteroid dehydrogenase, 5 alpha- and 5 beta-steroid hydrogenase and 17 alpha-steroid hydroxylase activity. 5 alpha-steroid hydrogenase activity was significantly higher in all preparations of male submandibular glands than in females. In sublingual glands some enzyme activities showed pregnancy-related decreased.

Animals↗

The effect of the transplanted pineal gland on the sympathetic innervation of the rat sublingual gland.

We investigated the effect of the pineal on sympathetic neurons that normally innervate the sublingual gland of the rat. When the pineal gland was transplanted into the sublingual gland, it remained as a distinct mass that was innervated by sympathetic axons. Injection of the retrograde tracer, Fast Blue, into the sublingual gland labelled sympathetic neurons in the ipsilateral superior cervical ganglion (SCG). Thirty per cent of all neurons labelled retrogradely by Fast Blue injection into transplanted pineal glands were immunoreactive for both neuropeptide Y (NPY) and calbindin. This combination is characteristic of sympathetic neurons innervating the pineal gland in its normal location, but not the sympathetic vasoconstrictor neurons normally innervating the sublingual gland. This, and our previous study in which the pineal gland was shown to similarly influence the phenotype of salivary secretomotor neurons, suggests that a range of different functional classes of sympathetic neuron are able to change their phenotype in response to signals released by the pineal gland.

Amidines↗

Carbohydrate histochemistry of the opossum submandibular and major sublingual glands.

Submandibular and major sublingual salivary glands of the opossum contain histochemically demonstrable neutral mucosubstances, nonsulfated acid musosubstances and sulfomucins. Sialomucins could not be demonstrated conclusively with the methods used in this study. Special serous cells of the opossum submandibular gland contained low concentrations of acidic mucosubstances but no appreciable concentration of neutral mucosubstances was seen. Sulfomucins were not observed in special serous cells. The mucous tubules of the submandibular gland contained high concentrations of neutral mucosubstances. No appreciable acidic mucosubstance was demonstrated in the submandibular gland mucous tubules. Unlike the mucous tubules of the submandibular gland, the major sublingual gland mucous tubules contained high concentrations of both neutral and acidic mucosubstances. The mucous tubules often contained sulfomucin-positive cells interspersed among cells that contained high concentrations of non-sulfated acidic mucosubstance. Marked staining of sulfated acidic mucosubstance was seen only in the major sublingual gland, in both the mucous tubules and in the seromucous demilunes. The seromucous demilunes contained both sulfated and non-sulfated acidic mucosubstances.

Animals↗

Ultrastructural observations on human sublingual gland.

That part of the human sublingual gland that corresponds in morphology to the conventional description of this organ presented in most histology texts (probably the major sublingual gland, in contradistinction to the aggregated small glands that compose the minor sublingual glands) was studied by electron microscopy. The gland is mixed, with slightly more mucous elements than seromucous ones. The mucous cells are arranged in tubules that usually are capped by seromucous demilunes. Seromucous cells also form occasional acini or may be scattered in the walls of the mucous tubules. The appearance of the mucous cells varies with the stage of the secretory cycle that they may be in. Their secretory droplets increase in number and progressively compress cytoplasmic organelles. Filamentous bodies also may be present. Based on secretory-granule substructure, four different kinds of seromucous cells can be recognized; these may be a morphological expression of asynchronous synthesis of different secretory proteins. The duct system is an abbreviated one compared to the other major salivary glands. The first duct segments, into which the mucous tubules drain, are similar to intercalated ducts. Larger ducts contain mitochondria-rich cells but lack the basal striations that characterize striated ducts. The paucity of typical striated ducts may be correlated with the elaboration of sodium-rich saliva by the human sublingual gland.

Adult↗

Morphological changes in the salivary glands upon stimulation by receptor-selective agonists. III. Sublingual glands of the mouse.

The innervation of the sublingual glands of the mouse by the atuonomic nervous system and the influence of receptor-selective mimetics of the neurotransmitter substances on these glands have been studied with histological techniques and have been compared with results of in vitro secretory experiments. The mimetics were administered either via an intraperitoneal injection or via the perfused blood vessels. The sublingual glands were predominantly innervated by the cholinergic nervous system. However, also some adrenergic nerves were observed in these glands, using the catecholamine fluorescence technique. The acinar mucous cells and serous demilune cells were stimulated to secrete their granules by pilocarpine, as expected on account of the innervation and the previously reported results of in vitro experiments. Isoprenaline and phenylephrine appeared to stimulate the release of granules from the demilune cells, despite the fact that only very few adrenergic nerves were found in these glands. These data suggested that the proteins secreted after stimulation with phenylephrine originated from the demilune cells. The way in which the acinar demilune - and mucous cells secrete their granules is not yet entirely clear. The demilune cells seemed to secrete in an exocytotic manner, apparently after an expansion of their luminal plasma membrane. The mucous cells did not secrete in an exocytotic way, but released the content of their granules after disruption of the apical plasma membranes.

Animals↗

Sublingual gland: MR features of normal and diseased states.

OBJECTIVE: We describe the MR features of the sublingual gland in normal and diseased states. SUBJECTS AND METHODS: We used MR imaging to assess age-related changes in size and signal intensity of normal sublingual glands in 60 control subjects. The MR features of sublingual glands were also studied in 70 patients with cancer, cellulitis of the sublingual space, Sjögren's syndrome, or ranula. RESULTS: MR imaging efficiently revealed normal sublingual glands. On T1-weighted images, the MR signal intensity of the sublingual gland was lower than that of the surrounding fat but higher than that of muscle. The sublingual glands showed age-related decreases in size, with approximately 25% of the thickness present in the second decade of life being lost by the seventh decade. T1-weighted signal intensity of the parotid gland increased with age, but the signal intensity of the sublingual and submandibular glands did not. T1-weighted signal intensity of carcinomas in and near the sublingual space was lower than that of the sublingual glands, but T2-weighted signal intensity of carcinomas exceeded that of the glands. Gadolinium enhancement occasionally diminished the contrast between invading carcinomas and the glands. T1-weighted MR imaging showed that sublingual glands affected by Sjögren's syndrome exhibit features analogous to those of the other major salivary glands; however, the sublingual glands seemed to be less severely involved overall in this syndrome than the other major glands. We found that using fat suppression and short inversion time inversion recovery may be useful for assessment of sialadenitis of the gland. CONCLUSION: MR imaging is useful in depicting normal and diseased states of the sublingual gland.

Adolescent↗

Muscarinic cholinergic receptor subtypes in rat sublingual glands.

Mucin glycoprotein secretion by rat sublingual glands is regulated primarily by muscarinic cholinergic receptors. Studies were conducted to identify muscarinic receptor subtypes in whole glands as well as in isolated acinar structures. In radioligand binding studies, we used subtype-selective antagonists in competition studies to initially determine receptor subtype heterogeneity. In membranes from whole glands, both pirenzepine and methoctramine displayed two affinity sites (M1 and M3) of nearly equal proportions. In contrast, acinar membranes contained a 1:2 and 2:1 ratio of M1 to M3 sites for pirenzepine and methoctramine, respectively. In all cases, p-fluoro-hexahydro-siladifenidol and 4-diphenylacetoxy-N-methylpiperidine each bound to a single class of binding sites. Northern analysis using oligonucleotide probes specific for the 5' ends of the translated regions of m1 through m5 receptors detected only m1 and m3 subtypes in poly(A)+ RNA from whole glands. We also used antisera specific for each receptor subtype to immunoprecipitate solubilized receptors from membrane preparations. Only m1 (51.7 and 64.9%) and m3 (48.3 and 34.7%) subtypes were found consistently in membranes from whole sublingual glands and isolated acini, respectively. Studies with other exocrine glands generally described the predominance of m3 receptors, and m1 receptors, if present, were presumably associated with contaminating neural structures. Our results therefore demonstrate that mucous acini from rat sublingual glands contain abundant amounts of both m1 and m3 receptors.

Animals↗